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首页> 外文期刊>Analytical chemistry >Fluorescence Resonance Energy Transfer Mediated Large Stokes Shifting Near-Infrared Fluorescent Silica Nanoparticles for in Vivo Small-Animal Imaging
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Fluorescence Resonance Energy Transfer Mediated Large Stokes Shifting Near-Infrared Fluorescent Silica Nanoparticles for in Vivo Small-Animal Imaging

机译:荧光共振能量转移介导的大斯托克斯位移近红外荧光二氧化硅纳米粒子用于体内小动物成像

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摘要

Fluorescent dye-doped silica nanoparticles are increasingly used for in vivo imaging due to their unique biocompatibility and easy surface modification. However, the utility of existing fluorescent dye-doped silica nanoparticles for in vivo imaging is still limited because most studies are focused on doping single near-infrared (NIR) dyes in the silica matrix, which would cause background and crosstalk between the excitation light and the emitting signals due to the small Stokes shift of the traditional NIR dyes. To address this issue, we present a novel large Stokes shifting NIR fluorescent silica nanoparticles (LSS-NFSiNPs) based on the principle of fluorescence resonance energy transfer. Two highly water-soluble dyes, tris(2,2-bipyridyl)-dichlororuthenium(II) hexahydrate (RuBpy) and methylene blue (MB), were chose as the model donor-acceptor pair. The LSS-NFSiNPs were prepared by synchronously doping RuBpy and MB in the silica nanoparticles. By optimizing the molar ratio of RuBpy and MB for doping in the silica nanoparticles, the energy transfer from RuBpy to MB occurred in the silica matrix, resulting in a near-infrared fluorescent silica nanoparticles with strong fluorescence and large Stokes shift (>200 nm). As a result, it can effectively help to increase the discrimination of fluorescence signal of interest over other background signals. With a combination of excellent stability, large Stokes shift, and near-infrared spectral properties, this novel LSS-NFSiNPs provides real-time, deep-tissue fluorescent imaging of live animals. More importantly, the LSS-NFSiNPs can also be gradually cleared from the body through the urinary clearance system. We anticipate this design concept can lay a foundation for further development of in vivo optical nanoparticulate contrast toward clinical applications.
机译:荧光染料掺杂的二氧化硅纳米粒子因其独特的生物相容性和易于表面修饰而越来越多地用于体内成像。但是,现有的荧光染料掺杂的二氧化硅纳米粒子在体内成像中的应用仍然受到限制,因为大多数研究都集中在在二氧化硅基质中掺杂单个近红外(NIR)染料,这会引起激发光与光之间的背景和串扰。由于传统NIR染料的斯托克斯位移很小,因此发射信号变弱。为了解决这个问题,我们基于荧光共振能量转移的原理,提出了一种新型的大斯托克斯位移近红外荧光二氧化硅纳米粒子(LSS-NFSiNPs)。选择两种高度水溶性的染料,即三水合三(2,2-联吡啶基)-二氯钌(II)(RuBpy)和亚甲基蓝(MB)作为模型供体-受体对。通过在二氧化硅纳米颗粒中同步掺杂RuBpy和MB制备LSS-NFSiNPs。通过优化RuBpy和MB的摩尔比以掺杂在二氧化硅纳米颗粒中,从RuBpy到MB的能量转移发生在二氧化硅基质中,从而产生具有强荧光和大斯托克斯位移(> 200 nm)的近红外荧光二氧化硅纳米颗粒。结果,与其他背景信号相比,它可以有效地帮助增加感兴趣的荧光信号的辨别力。这种新颖的LSS-NFSiNP具有出色的稳定性,大的斯托克斯频移和近红外光谱特性,可为活体动物提供实时的深层组织荧光成像。更重要的是,LSS-NFSiNPs也可以通过排尿系统从体内逐渐清除。我们预期该设计概念可为进一步开发体内光学纳米颗粒对比剂为临床应用奠定基础。

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